The role of fast electron energy transfer in the problem of shock ignition of laser thermonuclear target

被引:5
|
作者
Gus'kov, S. Yu [1 ]
Kuchugov, P. A. [1 ,2 ]
Yakhin, R. A. [1 ]
Zmitrenko, N., V [2 ]
机构
[1] Acad Sci, Lebedev Phys Inst Russian, Leninskii Av 53, Moscow 111991, Russia
[2] Russian Acad Sci, Keldysh Inst Appl Math, Miussakaya Sq 4, Moscow 125047, Russia
基金
俄罗斯科学基金会;
关键词
Laser-accelerated fast electrons; Inertial confinement fusion; Implosion; Spark ignition; Shock ignition; RADIATION; DENSITY; WAVES;
D O I
10.1016/j.hedp.2020.100835
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
The role of energy transfer by fast electrons, which is responsible for the positive effect of increasing the ablative pressure and the negative effect of preheating, on the implosion and thermonuclear gain of the target designed for shock ignition is investigated in comparison with the target designed for traditional spark ignition. On the base of one-dimensional hydrodynamic simulations with kinetic description of fast electron transfer it is shown, that depending on the characteristics of fast electron flux, in shock ignition target are manifested to varying degree both effects the positive and negative ones. This is a distinguishing feature of a shock ignition target compared to a traditional spark ignition target, in which only the negative effect of fast electron energy transfer takes place. In a shock ignition target up to temperatures of 50-60 keV, the positive effect is dominant and provides high gain. With an increase in the fast electron temperature, the role of the negative preheating effect increases, that ultimately leads to the ignition failure as temperature exceeding 90-100 keV.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Visualizing fast electron energy transport into laser-compressed high-density fast-ignition targets
    Jarrott, L. C.
    Wei, M. S.
    McGuffey, C.
    Solodov, A. A.
    Theobald, W.
    Qiao, B.
    Stoeckl, C.
    Betti, R.
    Chen, H.
    Delettrez, J.
    Doppner, T.
    Giraldez, E. M.
    Glebov, V. Y.
    Habara, H.
    Iwawaki, T.
    Key, M. H.
    Luo, R. W.
    Marshall, F. J.
    McLean, H. S.
    Mileham, C.
    Patel, P. K.
    Santos, J. J.
    Sawada, H.
    Stephens, R. B.
    Yabuuchi, T.
    Beg, F. N.
    NATURE PHYSICS, 2016, 12 (05) : 499 - +
  • [32] Role of Laser in the Problem of Controlled Thermonuclear Fusion - 1. Lasers and Controlled Thermonuclear Fusion.
    Basov, Nikolai
    Krokhine, Oleg
    Energie Nucleaire (Paris), 1973, 15 (02): : 121 - 122
  • [33] Fast ignition: Dependence of the ignition energy on source and target parameters for particle-in-cell-modelled energy and angular distributions of the fast electrons
    Bellei, C.
    Divol, L.
    Kemp, A. J.
    Key, M. H.
    Larson, D. J.
    Strozzi, D. J.
    Marinak, M. M.
    Tabak, M.
    Patel, P. K.
    PHYSICS OF PLASMAS, 2013, 20 (05)
  • [34] Numerical Simulation of Shock Wave Generation for Ignition of Precompressed Laser Fusion Target
    S. Yu. Gus’kov
    N. V. Zmitrenko
    O. R. Rahimli
    Journal of Russian Laser Research, 2018, 39 : 242 - 251
  • [35] Numerical Simulation of Shock Wave Generation for Ignition of Precompressed Laser Fusion Target
    Gus'kov, S. Yu.
    Zmitrenko, N. V.
    Rahimli, O. R.
    JOURNAL OF RUSSIAN LASER RESEARCH, 2018, 39 (03) : 242 - 251
  • [36] Hot electron spectra in hole-cone shell targets and a new proposal of the target for fast ignition in laser fusion
    Ozaki, T.
    Sunahara, A.
    Shiraga, H.
    Arikawa, Y.
    Fujioka, S.
    Sakagami, H.
    Zhang, Z.
    Nagatomo, H.
    Johzaki, T.
    Namimoto, T.
    Taga, M.
    Kojima, S.
    Abe, Y.
    Ishihara, K.
    Nagai, T.
    Sakata, S.
    Hattori, S.
    Sakawa, Y.
    Nishimura, H.
    Azechi, H.
    PHYSICA SCRIPTA, 2014, T161
  • [37] Laser hole boring and hot electron generation in the fast ignition scheme
    Sentoku, Y
    Kruer, W
    Matsuoka, M
    Pukhov, A
    FUSION SCIENCE AND TECHNOLOGY, 2006, 49 (03) : 278 - 296
  • [38] Generation and optimization of electron currents along the walls of a conical target for fast ignition
    Micheau, S.
    Debayle, A.
    d'Humieres, E.
    Honrubia, J. J.
    Qiao, B.
    Zepf, M.
    Borghesi, M.
    Geissler, M.
    PHYSICS OF PLASMAS, 2010, 17 (12)
  • [39] Recent fast electron energy transport experiments relevant to fast ignition inertial fusion
    Norreys, P. A.
    Scott, R. H. H.
    Lancaster, K. L.
    Green, J. S.
    Robinson, A. P. L.
    Sherlock, M.
    Evans, R. G.
    Haines, M. G.
    Kar, S.
    Zepf, M.
    Key, M. H.
    King, J.
    Ma, T.
    Yabuuchi, T.
    Wei, M. S.
    Beg, F. N.
    Nilson, P.
    Theobald, W.
    Stephens, R. B.
    Valente, J.
    Davies, J. R.
    Takeda, K.
    Azechi, H.
    Nakatsutsumi, M.
    Tanimoto, T.
    Kodama, R.
    Tanaka, K. A.
    NUCLEAR FUSION, 2009, 49 (10)
  • [40] Strong shock generation by fast electron energy deposition
    Fox, T. E.
    Robinson, A. P. L.
    Pasley, J.
    PHYSICS OF PLASMAS, 2013, 20 (12)